Field
[0001] The present invention relates to the field of mobile communications and particularly
to a method and device for transmitting an uplink control channel.
Background
[0002] Mobility and broadband has become development orientations of modern communication,
and the 3
rd Generation Partnership Project is making an effort to develop a Long Term Evolution
(LTE) system as an evolved 3G system for the purpose of evolving a 3GPP radio access
oriented toward high data rate, low delay and optimized packet data applications.
The multi-antenna technology at the physical layer has become one of crucial technologies
for an existing mobile communication system and offers numerous advantages, e.g.,
a throughput of the system improved due to a multiplexing gain of multiple antennas,
the performance of the system improved due to a diversity gain of multiple antennas,
interference between users eliminated by distinguishing one user from another due
to a directional gain of the antennas, etc.
[0003] At present, the design of the LTE system has been substantially completed in the
standardization effort of the 3GPP, and frame structures for a general transmission
scheme of the LTE system in an FDD system and a TDD system are as illustrated respectively
in Fig. 1 and Fig. 2. Downlink signaling and downlink data, and uplink signaling and
uplink data as well their mutual transmission relationships are defined for each operating
carrier, where two ends of a frequency band are occupied for uplink control signaling
transmitted through frequency-hopping, that is, different frequency ranges will be
occupied for transmission of the uplink control signaling in two time slots of a sub-frame.
[0004] The uplink control signaling is subject to orthogonal sequence spreading and then
mapped into an uplink control channel for transmission, thus a plurality of uplink
control channels can be transmitted concurrently on the same Physical Resource Block
(PRB). Each uplink control channel corresponds to a unique orthogonal sequence number,
and a UE can determine from the orthogonal sequence number an orthogonal spreading
sequence for its corresponding uplink control channel and the location of the PRB
where the uplink control channel is located.
[0005] At present there are two different formats of an uplink control channel, i.e., the
format 1/1a/1b and the format 2/2a/2b. ACK/NACK information corresponding to a downlink
data packet and an uplink Scheduling Request (SR) is carried in the format 1/1a/1b.
Channel quality related information, e.g., a Channel Quality Information (CQI), a
Pre-coding Matrix Information (PMI), a Rank Information (RI), etc., is fed back in
the format 2/2a/2b.
[0006] For a dynamically scheduled downlink data packet, the number of an uplink channel
on which ACK/NACK information is fed back (i.e., a orthogonal sequence number) will
be derived from the number of a Control Channel Element (CCE) occupied for a downlink
control channel on which scheduling information of the data packet is carried, that
is, a unique uplink channel resource number can be derived from a CCE number. In an
LTE Rel-8 system, a UE will transmit only one uplink control channel at most in each
sub-frame due to an uplink limitation arising from uni-carrier transmission, thus
an uplink control channel in actual use is an uplink control channel corresponding
to a first CCE occupied for a downlink control channel serving the UE.
[0007] ACK/NACK corresponding to a persistently scheduled downlink data packet, an SR and
a CQI/PMI/RI transmitted in the format 2/2a/2b are fed back periodically, and a base
station can know in advance specific temporal locations at which the respective information
is transmitted, thus the numbers of channels on which the foregoing control signaling
is transmitted are allocated in advance by RRC signaling from the base station to
a UE.
[0008] In the ongoing study of an uplink control channel for a Long Term Evolution-Advanced
system, a possibility has been proposed to use Orthogonal Resource Transmit Diversity
(ORTD) for transmit diversity in transmission of an uplink control channel for a UE
configured with a plurality of transmission antennas to thereby improve the reliability
or capacity of transmitting uplink control signaling. As ORTD implies, each antenna
port corresponds to one orthogonal sequence, and the same information is spread in
different orthogonal sequences and then transmitted concurrently by different antenna
ports. A receiver extracts signals from the different antenna ports and then combines
them for detection to thereby achieve a diversity gain.
[0009] Fig. 3 illustrates a schematic diagram of transmit diversity through ORTD with two
antennas, where Tx0 and Tx1 represents two transmission antenna, n_r0 and n_r1 represent
two orthogonal sequence numbers different from each other, and s represents feedback
information. A study shows an insignificant performance gain of ORTD with four antennas
as compared with that with two antennas. In view of an overhead of an orthogonal sequence
and alike, a hybrid scheme of ORTD and virtual antennas as illustrated in Fig. 4 is
recommended for four antennas. As compared with the ORTD-only scheme, a process of
virtualizing antennas is added here for transmission of information of two antenna
ports on four physical antennas, and this virtualizing process is transparent to a
base station, that is, the base station can receive without any knowledge of whether
a transmitter transmits on two or four antennas.
[0010] Dependent upon a specific transmission condition and demand, a UE configured with
a plurality of transmission antennas can alternatively go back to a single antenna
port transmission mode which can be performed in the following two approaches:
[0011] A first approach is transmission on a single physical antenna as illustrated in Fig.
5, which is the same as that in the LTE Rel-8 system.
[0012] A second approach is concurrent transmission of the same information with the same
orthogonal sequence to thereby improve actual transmit power and hence the reliability
of transmission, a schematic diagram of which is as illustrated in Fig. 6.
[0013] Transmission in the first or second approach is transparent to a receiver, that is,
the receiver can receive and demodulate without any knowledge of which transmission
approach is particularly used.
[0014] However there is no method for configuring transmission of an uplink control channel
in a plurality of transmission modes for a high-level UE configured with a plurality
of transmission antennas, making it impossible to make full use of the advantages
of the UE being provided with a plurality of transmission antennas, thus it is necessary
to propose a corresponding technical solution in which a base station configures flexibly
the UE configured with a plurality of transmission antennas dependent upon an operating
status of a system to have the UE transmit an uplink control channel in a varying
mode.
[0015] WO2008/133576 A1 discloses methods, a network controller unit and a network unit in a wireless communications
system. The transmission/reception mode to be used by a user equipment can be decided
in the network controller unit based on reports transmitted from the network unit.
The reports include a recommendation on the mode to be used by the UE.
[0016] The article of the company HUAWEI entitled: "
Performance of UL multiple antenna transmission for PUCCH" 3GPP DRAFT R1-092383 discusses Orthogonal Resource Transmission in the form of transmit
diversity (SORTD) and spatial multiplexing (SORSM) in the case of two and four transmit
antennas at the UE. Based on the simulation results and analysis, there are the following
conclusions: (1) ORT is proposed to be considered for LTE-A PUCCH transmission because
of the better performance and flexibility; (2) The gain of 4TX SORTD over 2TX is not
significant, and the obtained performance gain and resource usage need to be balanced;
(3) SORSM can be considered as a multiple antennas PUCCH transmission scheme to support
carrier aggregation (especially for asymmetric configurations) where amount of control
information to be transmitted is larger; and (4) Antenna hopping can be considered
for PUCCH SORSM to improve the impact of AGI. For PUCCH format 1a/1b, the number of
available sequences is implicitly decided by the number of control channel elements
(CCES) of PDCCH. When one PDCCH has four CCEs, there will be four corresponding sequences
reserved for the UE that could be used to improve Format 1a/1b detection performance
[0017] The article of the company SAMSUNG entitled: "
UL Transmit diversity for PUCCH formats 1/
1a/
1b in LTE-A" 3GPP DRAFT R1-092674 discusses several UL transmit diversity techniques for PUCCH.
According to the simulation results for PUCCH formats 1/1a/1b, ORT (orthogonal resource
transmission) (a.k.a., SCTD (space-code transmit diversity)) shows superior performance.
The number of orthogonal resources used in each transmit diversity technique was considered
together with the single-carrier property and backward compatibility in some contributions.
For the dynamic ACK/NACK of Rel-8, one orthogonal resource is implicitly mapped to
the first CCE of PDCCH. In ORT, the same control data are transmitted from different
transmit antennas using different orthogonal resources; for the dynamic ACK/NACK TxD
of LTE-A, one or more orthogonal resources could be sequentially mapped to CCEs of
the PDCCH to provide orthogonal resources for the multiple transmit antennas.
[0018] The article of the company QUALCOMM EUROPE entitled: "
PUCCH Transmit Diversity" 3GPP DRAFT R1-092711 discloses for all PUCCH formats, Space Orthogonal-Resource
Transmit Diversity (SORTD) should be applied. In the case that the UE has four transmit
antennas, clearly, SORTD using 4 orthogonal resources or combination of STBC with
SORTD using 2 orthogonal resources (for format 2 with normal CP) can be applied for
4-tx diversity. However, it is envisioned that it is better to form two virtual antennas
and apply the proposed diversity schemes over the virtual antennas to avoid estimating
all channels for all transmit antennas, which will potentially degrade the performance
because of the poor channel estimates.
[0019] US2003/235147 A1 discloses techniques for transmitting data using a number of diversity transmission
modes to improve reliability. At a transmitter, for each of one or more data streams,
a particular diversity transmission mode is selected for use from among a number of
possible transmission modes. These transmission modes may include a frequency diversity
transmission mode, a Walsh diversity transmission mode, a space time transmit diversity
(STTD) transmission mode, and a Walsh-STTD transmission mode. Each diversity transmission
mode redundantly transmits data over time, frequency, space, or a combination thereof.
Each data stream is coded and modulated to provide modulation symbols, which are further
processed based on the selected diversity transmission mode to provide transmit symbols.
For OFDM, the transmit symbols for all data streams are further OFDM modulated to
provide a stream of transmission symbols for each transmit antenna used for data transmission.
[0020] US2008/151798 A1 discloses that a mobile terminal reduces its power consumption by selectively switching
between a diversity mode and a non-diversity mode. The mobile terminal monitors the
total output power of two or more of its transmitters, and selectively switches between
the diversity mode and the non-diversity mode based on the total output power. The
mobile terminal may also selectively switch between the diversity and non-diversity
modes based on a difference in output power levels between the two or more transmitters.
Summary
[0021] An object of the invention is to address at least one of the foregoing technical
drawbacks particularly by enabling a base station to configure flexibly a UE configured
with a plurality of transmission antennas dependent upon an operating status of a
system to have the UE transmit an uplink control channel in a varying mode, thereby
improving requirements of the system upon a reliability and an efficiency and enhancing
effectively the performance of the system.
[0022] In order to attain the foregoing object, an aspect of embodiments of the invention
proposes a method for transmitting an uplink control channel including the operations
of: a base station configuring a UE with an uplink control channel transmission mode
by higher layer signaling; and the base station receiving an uplink control channel
transmitted by transmit diversity or an uplink control channel transmitted by a single
antenna port from the UE, according to the uplink control channel transmission mode;
wherein the transmission mode comprises a first mode and a second mode, and
in the first mode:
for ACK/NACK corresponding to a dynamically scheduled downlink data packet, the base
station determines an aggregation level of Physical Downlink Control Channel, PDCCH,
Control Channel Elements, CCEs, wherein the aggregation level of PDCCH CCEs is selected
from a first set of aggregation levels; and
for ACK/NACK corresponding to a persistently scheduled downlink data packet, an uplink
Scheduling Request, SR, and a Channel Quality Information, CQI, a Pre-coding Matrix
Information, PMI, and a Rank Information, RI, transmitted in a format 2/2a/2b, the
base station configures the UE with one available orthogonal sequence resource by
the higher layer signaling; and
in the second mode:
for ACK/NACK corresponding to a dynamically scheduled downlink data packet, the base
station determines an aggregation level of PDCCH CCEs, and if an uplink control channel
is transmitted by transmit diversity, then the aggregation level of PDCCH CCEs is
selected from a second set of aggregation levels; otherwise, the aggregation level
of PDCCH CCEs is selected from the first set of aggregation levels; and
for ACK/NACK corresponding to a persistently scheduled downlink data packet, an SR
and a CQI/PMI/RI transmitted in the format 2/2a/2b, the base station configures the
UE with two available orthogonal sequence resources by higher layer signaling, and
wherein the first set of aggregation levels comprises an aggregation level of 1, and
the second set of aggregation levels does not comprise the aggregation level of 1.
[0023] Another aspect of the embodiments of the invention further proposes a method for
transmitting an uplink control channel including the operations of: a user equipment
receiving higher layer signaling transmitted from a base station and acquiring information
on an uplink control channel transmission mode; and the user equipment transmitting
an uplink control channel by transmit diversity or transmitting an uplink control
channel by a single antenna port to the base station according to the uplink control
channel transmission mode
wherein the transmission mode comprises a first mode and a second mode, and
when the transmission mode is the first mode, the User Equipment, UE, transmits an
uplink control channel by a single antenna port; and
when the transmission mode is the second mode, the UE acquires one or more available
sequence resources by detecting Physical Downlink Control Channel, PDCCH, information
or the higher layer signaling and transmits an uplink control channel by transmit
diversity or transmits an uplink control channel by a single antenna port to the base
station;
wherein when the transmission mode is the second mode,
when the number of available orthogonal sequence resources is more than 1, the UE
transmits on multiple antenna ports with corresponding orthogonal sequences using
transmit diversity; or
when the number of available orthogonal sequence resources is 1, the UE transmits
an uplink control channel using a single antenna port.
[0024] Another aspect of the embodiments of the invention further proposes a base station
including a configuring module, a transmitting module and a receiving module, wherein
the configuring module is configured to configure a UE with an uplink control channel
transmission mode; the transmitting module is configured to transmit the uplink control
channel transmission mode to the UE by higher layer signaling; and the receiving module
is configured to receive an uplink control channel transmitted by transmit diversity
or an uplink control channel transmitted by a single antenna port from the UE according
to the uplink control channel transmission mode;
wherein the transmission mode comprises a first mode and a second mode, and
in the first mode,
for ACK/NACK corresponding to a dynamically scheduled downlink data packet, the configuring
module determines an aggregation level of Physical Downlink Control Channel, PDCCH,
Control Channel Elements, CCEs, wherein the aggregation level of PDCCH CCEs is selected
from a first set of aggregation levels; and
for ACK/NACK corresponding to a persistently scheduled downlink data packet, a Scheduling
Request, SR, and a Channel Quality Information, CQI, a Pre-coding Matrix Information,
PMI, and a Rank Information, RI, transmitted in a format 2/2a/2b, the configuring
module configures the UE with one available orthogonal sequence resource; and
in the second mode:
for ACK/NACK corresponding to a dynamically scheduled downlink data packet, the configuring
module determines an aggregation level of PDCCH CCEs, and if an uplink control channel
is transmitted by transmit diversity, then the aggregation level of PDCCH CCEs is
selected from a second set of aggregation levels; otherwise, the aggregation level
of PDCCH CCEs is selected from the first set of aggregation levels; and
for ACK/NACK corresponding to a persistently scheduled downlink data packet, an SR
and a CQI/PMI/RI transmitted in the format 2/2a/2b, the configuring module configures
the UE with two available orthogonal sequence resources, and
wherein the first set of aggregation levels comprises an aggregation level of 1, and
the second set of aggregation levels does not comprise the aggregation level of 1.
[0025] Another aspect of the embodiments of the invention further proposes a User Equipment,
UE, including a receiving module and a transmitting module, wherein the receiving
module is configured to receive higher layer signaling transmitted from a base station
and to acquire information on an uplink control channel transmission mode; and the
transmitting module is configured to transmit an uplink control channel by transmit
diversity or transmit an uplink control channel by a single antenna port to the base
station;
wherein the transmitting module comprises a first mode and a second mode, and
when the transmission mode is the first mode, the transmitting module transmits an
uplink control channel by a single antenna port; or
when the transmission mode is the second mode, the receiving module acquires one or
more available sequence resources by detecting Physical Downlink Control Channel,
PDCCH, information or the higher layer signaling, and the transmitting module transmits
an uplink control channel by transmit diversity or transmits an uplink control channel
by a single antenna port to the base station;
wherein when the transmission mode is the second mode,
when there is more than one available orthogonal sequence resource, the transmitting
module transmits on multiple antenna ports with corresponding orthogonal sequences
using transmit diversity; or
when there is one available orthogonal sequence resource, the transmitting module
transmits an uplink control channel using a single antenna port.
[0026] In the technical solutions according to the embodiments of the invention, a base
station configures flexibly a UE configured with multiple transmission antennas dependent
upon an operating status of a system to have the UE transmit an uplink control channel
in a varying mode, thereby improving requirements of the system upon a reliability
and an efficiency and enhancing effectively the performance of the system. The foregoing
solution according to the embodiments of the invention can be applicable to both an
FDD system and a TDD system with a minor modification to the existing system without
any influence upon the compatibility of the system and can be simple and efficient
to implement.
[0027] Additional aspects and advantages of the invention will partly be presented in the
following description, partly become apparent in the following description or be appreciated
in practicing of the invention.
Brief Description of the Drawings
[0028] The foregoing and/or additional aspects and advantages of the invention will become
apparent and readily understood in the foregoing description of embodiments taken
in conjunction with the drawings in which:
Fig. 1 is a schematic diagram of a frame structure of an FDD system;
Fig. 2 is a schematic diagram of a frame structure of a TDD system;
Fig. 3 is a schematic diagram of transmit diversity with two antennas;
Fig. 4 is a schematic diagram of transmit diversity with four antennas;
Fig. 5 is a schematic diagram of transmission on a single physical antenna;
Fig. 6 is a schematic diagram of power combination of two physical antennas;
Fig. 7 is a flow chart of a method for transmitting an uplink control channel at the
side of a base station according to an embodiment of the invention;
Fig. 8 is a flow chart of a method for transmitting an uplink control channel at the
side of a user equipment according to an embodiment of the invention;
Fig. 9 is a schematic structural diagram of a base station according to an embodiment
of the invention; and
Fig. 10 is a schematic structural diagram of a user equipment according to an embodiment
of the invention.
Detailed Description
[0029] Embodiments of the invention will be detailed below, and examples of the embodiments
will be illustrated in the drawings throughout which identical or similar reference
numerals represent identical or similar elements or functionally identical or similar
elements. The embodiments described below with reference to the drawings are illustrative
and merely intended to set forth but not construed to limit the invention.
[0030] In a technical solution according to the invention, two uplink control channel transmission
modes are supported for a User Equipment (UE) configured with a plurality of transmission
antennas.
[0031] In a first mode, the UE transmits an uplink control channel fixedly by a single antenna
port by transmitting an uplink control channel in the single antenna port transmission
mode as introduced in the Background.
[0032] In a second mode, the UE can transmit an uplink control channel by multiple antenna
ports, and here the mode can be further performed in two handling methods dependent
upon a varying number of available orthogonal sequences with which an uplink control
channel are transmitted:
[0033] In a first handling method, if there is only one available orthogonal sequence, then
the UE can transmit an uplink control channel in the single antenna port transmission
mode as introduced in the Background. For ACK/NACK corresponding to a dynamically
scheduled downlink data packet, an aggregation level of PDCCH CCEs is 1 and there
is only one available orthogonal sequence; and for ACK/NACK corresponding to a persistently
scheduled downlink data packet, an SR, and a CQI/PMI/RI transmitted in the format
2/2a/2b, a base station configures the UE with one available orthogonal sequence number
by RRC signaling.
[0034] In a second handling method, if there are a plurality of available orthogonal sequences,
the UE can transmit uplink control signaling by multiple antenna ports to achieve
a diversity gain as illustrated in Fig. 3 and Fig. 4 in the Background. For ACK/NACK
corresponding to a dynamically scheduled downlink data packet with an aggregation
level of PDCCH CCEs above 1, orthogonal sequences corresponding to first two CCEs
of a Physical Downlink Control Channel (PDCCH) can be used, and if a specific condition
of a transmission channel determines that an uplink control channel of a specific
user must be transmitted by transmit diversity, then a base station can limit the
aggregation level of PDCCH CCEs corresponding to the user to at least 2; and for ACK/NACK
corresponding to a persistently scheduled downlink data packet, an SR, and a CQI/PMI/RI
transmitted in the format 2/2a/2b, a base station configures the UE with two available
orthogonal sequence numbers by RRC signaling.
[0035] The transmission modes defined according to the invention are as depicted in the
table below:
| Transmission mode |
Orthogonal sequence resource |
Transmission method |
| Mode 1 |
At least one available orthogonal sequence resource |
Transmission by a single antenna port |
| Mode 2 |
Only one available orthogonal sequence resource |
Transmission by a single antenna port |
| A plurality of available orthogonal sequence resource |
Transmit diversity |
[0036] Thus, in order to attain the object of the invention, an embodiment of the invention
proposes a method for transmitting an uplink control channel including the operations
of: a base station configures a UE with an uplink control channel transmission mode
by higher layer signaling; and the base station receiving an uplink control channel
transmitted by transmit diversity or an uplink control channel transmitted by a single
antenna port from the UE according to the uplink control channel transmission mode.
[0037] Fig. 7 illustrates a flow chart of a method for transmitting an uplink control channel
at the side of a base station according to an embodiment of the invention. The method
includes the following operations S101 and S102:
S101: A base station configures a UE with an uplink control channel transmission mode
by higher layer signaling.
[0038] In the operation S101, the base station configures a UE with an uplink control channel
transmission mode by higher layer signaling, e.g., RRC signaling, etc. The transmission
mode is categorized into a first mode and a second mode.
[0039] Further in connection with a specific system, the first mode includes:
[0040] For ACK/NACK corresponding to a dynamically scheduled downlink data packet, the base
station determines an aggregation level of PDCCH CCEs, and taking a targeted PDCCH
detection reliability as an example, the aggregation level of PDCCH CCEs is selected
from a first set of aggregation levels including the aggregation level of 1, and the
first set of aggregation levels can include 1, 2, 4 and 8.
[0041] For ACK/NACK corresponding to a persistently scheduled downlink data packet, an SR,
and a CQI/PMI/RI transmitted in the format 2/2a/2b, the base station configures the
UE with one available orthogonal sequence resource by RRC signaling.
[0042] The second mode includes:
For ACK/NACK corresponding to a dynamically scheduled downlink data packet, the base
station determines an aggregation level of PDCCH CCEs, and taking a PDCCH detection
reliability and the selected uplink control channel transmission mode as an example,
if an uplink control channel is transmitted by transmit diversity, then the aggregation
level of PDCCH CCEs is selected from a second set of aggregation levels in which the
aggregation level of 1 is absent, and the second set of aggregation levels can include
2, 4 and 8; otherwise, the aggregation level of PDCCH CCEs is selected from the first
set of aggregation levels including the aggregation level of 1, and the first set
of aggregation levels can include 1, 2, 4 and 8.
For ACK/NACK corresponding to a persistently scheduled downlink data packet, an SR,
and a CQI/PMI/RI transmitted in the format 2/2a/2b, the base station configures the
UE with two available orthogonal sequence resources by RRC signaling.
[0043] Thus corresponding to the different transmission modes, the UE transmits an uplink
control channel by a single antenna port on one available orthogonal sequence resource
and the aggregation level of PDCCH CCEs is an aggregation level determined by a PDCCH
detection reliability when the base station configures the UE with the first mode.
Typically, a different PDCCH detection reliability corresponds to a different coding
rate, and the PDCCH detection reliability is guaranteed by selecting the corresponding
coding rate so that a corresponding CCE aggregation level can be determined after
selecting a coding rate, that is, the number of CCEs required for carrying and thus
a corresponding CCE aggregation level can be determined after PDCCH data to be transmitted
and a coding rate is known.
[0044] When the base station configures the UE with the second mode, the base station allocates
more than one available orthogonal sequence resource to the UE, and the UE transmits
by multiple antenna ports with corresponding orthogonal sequences using transmit diversity;
or the base station allocates one available orthogonal sequence resource to the UE,
and the UE transmits an uplink control channel by a single antenna port. Furthermore
when the UE transmits an uplink control channel by a single antenna port, the system
can support switching between a single physical antenna transmission mode and a multiple
physical antennas transmission mode, and the UE can perform switching by itself dependent
upon a specific situation. For example, when the UE transmits an uplink control channel
by a single antenna port, the UE determines by itself the number of physical antennas
for use according to a Transmission Power Control (TPC) of an uplink control channel
on a PDCCH: when transmit power adjusted according to the TPC exceeds the maximum
transmit power of a single antenna, the UE transmits an uplink control channel concurrently
on multiple physical antennas; otherwise, the UE transmits an uplink control channel
on a single physical antenna.
[0045] Particularly determining the aggregation level of PDCCH CCEs in the second mode further
includes:
if the UE transmits an uplink control channel by transmit diversity, the aggregation
level of PDCCH CCEs is max {2, the aggregation level determined by the PDCCH detection
reliability}; otherwise, the aggregation level of PDCCH CCEs is the aggregation level
determined by the PDCCH detection reliability.
S102: The base station receives an uplink control channel transmitted from the UE
according to the transmission mode.
[0046] Since the base station can know the specific transmission mode of the UE after initial
configuring, the base station receives by transmit diversity if the UE transmits by
diversity; otherwise, the base station receives by a single antenna port, in the operation
S102.
[0047] An embodiment of the invention further proposes a method for transmitting an uplink
control channel including the following operations: a user equipment receiving higher
layer signaling transmitted from a base station and acquiring information on an uplink
control channel transmission mode; and the user equipment transmitting an uplink control
channel by transmit diversity or transmitting an uplink control channel by a single
antenna port to the base station according to the transmission mode.
[0048] Fig. 8 illustrates a flow chart of a method for transmitting an uplink control channel
at the side of a user equipment according to an embodiment of the invention. The method
includes the following operations S201 and S202:
S201: A user equipment acquires information on an uplink control channel transmission
mode.
[0049] In the operation S201, the user equipment receives the higher layer signaling transmitted
from a base station and acquires the information on the uplink control channel transmission
mode.
[0050] Particularly the transmission mode includes a first mode and a second mode.
[0051] When the transmission mode is the first mode, the UE transmits an uplink control
channel by a single antenna port.
[0052] When the transmission mode is the second mode, the UE acquires an available sequence
resource by detecting PDCCH information or the higher layer signaling and transmits
an uplink control channel by transmit diversity or transmits an uplink control channel
by a single antenna port to the base station.
S202: The user equipment transmits an uplink control channel to the base station according
to the transmission mode.
[0053] In the operation S202, the user equipment transmits an uplink control channel by
transmit diversity or transmits an uplink control channel by a single antenna port
to the base station according to the transmission mode.
[0054] Particularly when the transmission mode is the second mode and there is more than
one available orthogonal sequence resource, the UE transmits by multiple antenna ports
with corresponding orthogonal sequences using transmit diversity; or when there is
one available orthogonal sequence resource, the UE transmits an uplink control channel
using a single antenna port.
[0055] Furthermore when the UE transmits an uplink control channel by a single antenna port,
the system can support switching between two transmission modes of a single physical
antenna transmission mode and a multiple physical antennas transmission mode, and
the UE can perform switching by itself dependent upon a specific situation. For example,
when the UE transmits an uplink control channel by a single antenna port, the UE determines
by itself the number of physical antennas for use according to a Transmission Power
Control (TPC) of an uplink control channel on a PDCCH: when transmit power adjusted
according to the TPC exceeds the maximum transmit power of a single antenna, the UE
transmits an uplink control channel concurrently on multiple physical antennas; otherwise,
the UE transmits an uplink control channel on a single physical antenna.
[0056] As illustrated in Fig. 9, an embodiment of the invention further proposes a base
station 100 including a configuring module 130, a transmitting module 110 and a receiving
module 120.
[0057] Particularly the configuring module 130 is configured to configure a UE with an uplink
control channel transmission mode; the transmitting module 110 is configured to transmit
the uplink control channel transmission mode to the UE by higher layer signaling;
and the receiving module 120 is configured to receive an uplink control channel transmitted
by transmit diversity or an uplink control channel transmitted by a single antenna
port from the UE, according to the uplink control channel transmission mode.
[0058] In an embodiment of the base station 100, the transmission mode includes a first
mode and a second mode.
[0059] Particularly the first mode includes:
For ACK/NACK corresponding to a dynamically scheduled downlink data packet, the configuring
module 130 determines an aggregation level of PDCCH CCEs, where the aggregation level
of PDCCH CCEs is selected from a first set of aggregation levels. The first set of
aggregation levels includes the aggregation level of 1, and the first set of aggregation
levels can include 1, 2, 4 and 8. For ACK/NACK corresponding to a persistently scheduled
downlink data packet, an SR, and a CQI/PMI/RI transmitted in the format 2/2a/2b, the
configuring module 130 configures the UE with one available orthogonal sequence resource.
[0060] The second mode includes:
For ACK/NACK corresponding to a dynamically scheduled downlink data packet, the configuring
module 130 determines an aggregation level of PDCCH CCEs, and if an uplink control
channel is transmitted by transmit diversity, then the aggregation level of PDCCH
CCEs is selected from a second set of aggregation levels in which the aggregation
level of 1 is absent, and the second set of aggregation levels can include 2, 4 and
8; otherwise, the aggregation level of PDCCH CCEs is selected from the first set of
aggregation levels including the aggregation level of 1, and the first set of aggregation
levels can include 1, 2, 4 and 8. For ACK/NACK corresponding to a persistently scheduled
downlink data packet, an SR, and a CQI/PMI/RI transmitted in the format 2/2a/2b, the
configuring module 130 configures the UE with two available orthogonal sequence resources.
[0061] In an embodiment of the base station 100, the UE transmits an uplink control channel
by a single antenna port on one available orthogonal sequence resource and the aggregation
level of PDCCH CCEs is an aggregation level determined by a PDCCH detection reliability
when the configuring module 130 configures the UE with the first mode.
[0062] In an embodiment of the base station 100, when the configuring module 130 configures
the UE with the second mode, the base station 100 allocates more than one available
orthogonal sequence resource to the UE, and the UE transmits by multiple antenna ports
with corresponding orthogonal sequences using transmit diversity; or the base station
100 allocates one available orthogonal sequence resource to the UE, and the UE transmits
an uplink control channel by a single antenna port.
[0063] In an embodiment of the base station 100, determining the aggregation level of PDCCH
CCEs in the second mode includes: if the UE transmits an uplink control channel by
transmit diversity, the aggregation level of PDCCH CCEs is max {2, the aggregation
level determined by the PDCCH detection reliability}; otherwise, the aggregation level
of PDCCH CCEs is the aggregation level determined by the PDCCH detection reliability.
[0064] As illustrated in Fig. 10, an embodiment of the invention further proposes a UE 200
including a receiving module 220 and a transmitting module 210.
[0065] Particularly the receiving module 220 is configured to receive higher layer signaling
transmitted from a base station and to acquire information on an uplink control channel
transmission mode; and the transmitting module 210 is configured to transmit an uplink
control channel by transmit diversity or transmit an uplink control channel by a single
antenna port to the base station.
[0066] In an embodiment of the UE 200, the UE 200 further includes a parsing module 230
configured to parse the information on the transmission mode including a first mode
and a second mode.
[0067] When the transmission mode is the first mode, the transmitting module 210 transmits
an uplink control channel by a single antenna port; or when the transmission mode
is the second mode, the receiving module 220 acquires an available sequence resource
by detecting PDCCH information or the higher layer signaling, and the transmitting
module 210 transmits an uplink control channel by transmit diversity or transmits
an uplink control channel by a single antenna port to the base station.
[0068] In an embodiment of the UE 200, when the transmission mode is the second mode and
there is more than one available orthogonal sequence resource, the transmitting module
210 transmits by multiple antenna ports with corresponding orthogonal sequences using
transmit diversity; or when there is one available orthogonal sequence resource, the
transmitting module 210 transmits an uplink control channel using a single antenna
port.
[0069] In an embodiment of the UE 200, the transmitting module 210 transmits an uplink control
channel by a single antenna port on one or more physical antennas, the UE 200 determines
by itself the number of physical antennas for use according to a Transmission Power
Control (TPC) of an uplink control channel on a PDCCH from the base station: when
transmit power adjusted according to the TPC exceeds the maximum transmit power of
a single antenna, the transmitting module 210 transmits an uplink control channel
concurrently on multiple physical antennas; otherwise, the transmitting module 210
transmits an uplink control channel on a single physical antenna.
[0070] In the technical solution according to the embodiments of the invention, a base station
configures flexibly a UE configured with multiple transmission antennas dependent
upon an operating status of a system to have the UE transmit an uplink control channel
in a varying mode, thereby improving requirements of the system upon a reliability
and an efficiency and enhancing effectively the performance of the system. The foregoing
solution according to the embodiments of the invention can be applicable to both an
FDD system and a TDD system with a minor modification to the existing system without
any influence upon the compatibility of the system and can be simple and efficient
to implement.
[0071] Those ordinarily skilled in the art can appreciate that all or a part of the operations
in the methods according to the embodiments can be performed in program instructing
relevant hardware, and the program can be stored in a computer readable storage medium
and perform when being executed any one or combination of the operations in the embodiments
of the methods.
[0072] Furthermore the respective functional modules in the respective embodiments of the
invention can be integrated in a processing module or physically present separately
from each other, or two or more of the modules can be integrated in a module. The
integrated module can be embodied in the form of hardware or a software functional
module. The integrated module can also be stored in a computer readable storage medium
if it is embodied in the form of a software functional module and sold or used as
a stand-alone product.
[0073] The storage medium mentioned above can be a read-only memory, a magnetic disk, an
optical disk, etc.
[0074] The foregoing description is merely illustrative of the preferred embodiments of
the invention, and it shall be noted that those ordinarily skilled in the art can
further make several modifications and variations thereto without departing from the
principle of the invention and that these modifications and variations shall also
be deemed as coming into the claimed scope of the invention.
1. A method for transmitting an uplink control channel, comprising:
a base station configuring a User Equipment, UE, with an uplink control channel transmission
mode by higher layer signaling (S101); and
the base station receiving an uplink control channel transmitted by transmit diversity
or an uplink control channel transmitted by a single antenna port from the UE, according
to the uplink control channel transmission mode (S102);
wherein the transmission mode comprises a first mode and a second mode, and
in the first mode:
for ACK/NACK corresponding to a dynamically scheduled downlink data packet, the base
station determines an aggregation level of Physical Downlink Control Channel, PDCCH,
Control Channel Elements, CCEs, wherein the aggregation level of PDCCH CCEs is selected
from a first set of aggregation levels; and
for ACK/NACK corresponding to a persistently scheduled downlink data packet, an uplink
Scheduling Request, SR, and a Channel Quality Information, CQI, a Pre-coding Matrix
Information, PMI, and a Rank Information, RI, transmitted in a format 2/2a/2b, the
base station configures the UE with one available orthogonal sequence resource by
the higher layer signaling; and
in the second mode:
for ACK/NACK corresponding to a dynamically scheduled downlink data packet, the base
station determines an aggregation level of PDCCH CCEs, and if an uplink control channel
is transmitted by transmit diversity, then the aggregation level of PDCCH CCEs is
selected from a second set of aggregation levels; otherwise, the aggregation level
of PDCCH CCEs is selected from the first set of aggregation levels; and
for ACK/NACK corresponding to a persistently scheduled downlink data packet, an SR
and a CQI/PMI/RI transmitted in the format 2/2a/2b, the base station configures the
UE with two available orthogonal sequence resources by higher layer signaling, and
wherein the first set of aggregation levels comprises an aggregation level of 1, and
the second set of aggregation levels does not comprise the aggregation level of 1.
2. The method for transmitting an uplink control channel according to claim 1, wherein:
the first set of aggregation levels comprises 1, 2, 4 and 8; and
the second set of aggregation levels comprises 2, 4 and 8.
3. The method for transmitting an uplink control channel according to claim 1 or 2, wherein,
when the base station configures the UE with the first mode, the UE transmits an uplink
control channel by a single antenna port on one available orthogonal sequence resource,
and the aggregation level of PDCCH CCEs is an aggregation level determined by a PDCCH
detection reliability; or
when the base station configures the UE with the second mode,
the base station allocates more than one available orthogonal sequence resource to
the UE, and the UE transmits on multiple antenna ports with corresponding orthogonal
sequences using transmit diversity; or
the base station allocates one available orthogonal sequence resource to the UE, and
the UE transmits an uplink control channel using a single antenna port.
4. Abase station, comprising a configuring module (130), a transmitting module (110)
and a receiving module (120), wherein:
the configuring module (130) is configured to configure a User Equipment, UE, with
an uplink control channel transmission mode;
the transmitting module (110) is configured to transmit the uplink control channel
transmission mode to the UE by higher layer signaling; and
the receiving module (120) is configured to receive an uplink control channel transmitted
by transmit diversity or an uplink control channel transmitted by a single antenna
port from the UE, according to the uplink control channel transmission mode;
wherein the transmission mode comprises a first mode and a second mode, and
in the first mode,
for ACK/NACK corresponding to a dynamically scheduled downlink data packet, the configuring
module (130) determines an aggregation level of Physical Downlink Control Channel,
PDCCH, Control Channel Elements, CCEs, wherein the aggregation level of PDCCH CCEs
is selected from a first set of aggregation levels; and
for ACK/NACK corresponding to a persistently scheduled downlink data packet, a Scheduling
Request, SR, and a Channel Quality Information, CQI, a Pre-coding Matrix Information,
PMI, and a Rank Information, RI, transmitted in a format 2/2a/2b, the configuring
module (130) configures the UE with one available orthogonal sequence resource; and
in the second mode:
for ACK/NACK corresponding to a dynamically scheduled downlink data packet, the configuring
module (130) determines an aggregation level of PDCCH CCEs, and if an uplink control
channel is transmitted by transmit diversity, then the aggregation level of PDCCH
CCEs is selected from a second set of aggregation levels; otherwise, the aggregation
level of PDCCH CCEs is selected from the first set of aggregation levels; and
for ACK/NACK corresponding to a persistently scheduled downlink data packet, an SR
and a CQI/PMI/RI transmitted in the format 2/2a/2b, the configuring module (130) configures
the UE with two available orthogonal sequence resources, and
wherein the first set of aggregation levels comprises an aggregation level of 1, and
the second set of aggregation levels does not comprise the aggregation level of 1.
5. The base station of claim 4, wherein,
when the configuring module (130) configures the UE with the first mode, the UE transmits
an uplink control channel by a single antenna port on one available orthogonal sequence
resource, and the aggregation level of PDCCH CCEs is an aggregation level determined
by a PDCCH detection reliability; or
when the configuring module (130) configures the UE with the second mode,
the base station allocates more than one available orthogonal sequence resource to
the UE, and the UE transmits on multiple antenna ports with corresponding orthogonal
sequences using transmit diversity; or
the base station allocates one available orthogonal sequence resource to the UE, and
the UE transmits an uplink control channel using a single antenna port.
1. Verfahren zum Senden von Daten in einem Aufwärtsstreckensteuerkanal, das Folgendes
umfasst:
eine Basisstation konfiguriert ein Anwendergerät, UE, mit einer Aufwärtsstreckensteuerkanalsendebetriebsart
durch Signalisierung einer höheren Schicht (S101); und
die Basisstation empfängt einen Aufwärtsstreckensteuerkanal, der durch eine Sendediversity
gesendet wird, oder einen Aufwärtsstreckensteuerkanal, der durch einen einzelnen Antennenanschluss
gesendet wird, von dem UE gemäß der Aufwärtsstreckensteuerkanalsendebetriebsart (S102);
wobei die Sendebetriebsart eine erste Betriebsart und eine zweite Betriebsart umfasst,
und
in der ersten Betriebsart:
für ACK/NACK, das einem dynamisch geplanten Abwärtsstreckendatenpaket entspricht,
die Basisstation eine Aggregationsstufe von Steuerkanalelementen, CCEs, des physikalischen
Abwärtsstreckensteuerkanals, PDCCH, bestimmt, wobei die Aggregationsstufe von PDCCH-CCEs
aus einer ersten Menge von Aggregationsstufen ausgewählt ist; und
für ACK/NACK, das einem persistent geplanten Abwärtsstreckendatenpaket entspricht,
eine Aufwärtsstreckenplanungsanforderung, SR, und eine Kanalqualitätsinformation,
CQI, eine Vorcodierungsmatrixinformation, PMI, und eine Ranginformation, RI, die in
einem Format 2/2a/2b gesendet werden, die Basisstation das UE mit einem verfügbaren
Betriebsmittel einer orthogonalen Folge durch die Signalisierung der höheren Schicht
konfiguriert; und
in der zweiten Betriebsart:
für ACK/NACK, das einem dynamisch geplanten Abwärtsstreckendatenpaket entspricht,
die Basisstation eine Aggregationsstufe von PDCCH-CCEs bestimmt, und dann, wenn ein
Aufwärtsstreckensteuerkanal durch Sendediversity gesendet wird, die Aggregationsstufe
der PDCCH-CCEs aus einer zweiten Menge von Aggregationsstufen ausgewählt wird; andernfalls
die Aggregationsstufe von PDCCH-CCEs aus der ersten Menge von Aggregationsstufen ausgewählt
wird; und
für ACK/NACK, das einem persistent geplanten Abwärtsstreckendatenpaket entspricht,
eine SR und eine CQI/PMI/RI, die in dem Format 2/2a/2b gesendet werden, die Basisstation
das UE mit zwei verfügbaren Betriebsmitteln einer orthogonalen Folge durch Signalisierung
der höheren Schicht konfiguriert, und
wobei die erste Menge von Aggregationsstufen eine Aggregationsstufe von 1 umfasst,
und die zweite Menge von Aggregationsstufen die Aggregationsstufe von 1 nicht umfasst.
2. Verfahren zum Senden eines Aufwärtsstreckensteuerkanals nach Anspruch 1, wobei:
die erste Menge von Aggregationsstufen 1, 2, 4 und 8 umfasst; und
die zweite Menge von Aggregationsstufen 2, 4 und 8 umfasst.
3. Verfahren zum Senden eines Aufwärtsstreckensteuerkanals nach Anspruch 1 oder 2, wobei,
wenn die Basisstation das UE in der ersten Betriebsart konfiguriert, das UE einen
Aufwärtsstreckensteuerkanal durch einen einzelnen Antennenanschluss auf einem verfügbaren
Betriebsmittel einer orthogonalen Folge sendet und die Aggregationsstufe von PDCCH-CCEs
eine Aggregationsstufe ist, die durch eine PDCCH-Detektionszuverlässigkeit bestimmt
ist; oder
wenn die Basisstation das UE mit der zweiten Betriebsart konfiguriert,
die Basisstation dem UE mehr als ein verfügbares Betriebsmittel einer orthogonalen
Folge zuweist und das UE auf mehreren Antennenanschlüssen mit entsprechenden orthogonalen
Folgen unter Verwendung von Sendediversity sendet; oder
die Basisstation dem UE ein verfügbares Betriebsmittel einer orthogonalen Folge zuweist
und das UE einen Aufwärtsstreckensteuerkanal unter Verwendung eines einzelnen Antennenanschlusses
sendet.
4. Basisstation, die ein Konfigurationsmodul (130), ein Sendemodul (110) und ein Empfangsmodul
(120) umfasst, wobei:
das Konfigurationsmodul (130) konfiguriert ist, ein Anwendergerät, UE, mit einer Aufwärtsstreckensteuerkanalsendebetriebsart
zu konfigurieren;
das Sendemodul (110) konfiguriert ist, die Aufwärtsstreckensteuerkanalsendebetriebsart
durch Signalisierung höherer Schicht zu dem UE zu senden; und
das Empfangsmodul (120) konfiguriert ist, einen Aufwärtsstreckensteuerkanal, der durch
eine Sendediversity gesendet wird, oder einen Aufwärtsstreckensteuerkanal, der durch
einen einzelnen Antennenanschluss von dem UE gesendet wird, gemäß der Aufwärtsstreckensteuerkanalsendebetriebsart
zu empfangen;
wobei die Sendebetriebsart eine erste Betriebsart und eine zweite Betriebsart umfasst,
und
in der ersten Betriebsart,
für ACK/NACK, das einem dynamisch geplanten Abwärtsstreckendatenpaket entspricht,
das Konfigurationsmodul (130) eine Aggregationsstufe von Steuerkanalelementen, CCEs,
des physikalischen Abwärtsstreckensteuerkanals, PDCCH, bestimmt, wobei die Aggregationsstufe
von PDCCH-CCEs aus einer ersten Menge von Aggregationsstufen ausgewählt ist; und
für ACK/NACK, das einem persistent geplanten Abwärtsstreckendatenpaket entspricht,
eine Planungsanforderung, SR, und eine Kanalqualitätsinformation, CQI, eine Vorcodierungsmatrixinformation,
PMI, und eine Ranginformation, RI, die in einem Format 2/130a/2b gesendet werden,
das Konfigurationsmodul (130) das UE mit einem verfügbaren Betriebsmittel einer orthogonalen
Folge konfiguriert; und
in der zweiten Betriebsart:
für ACK/NACK, das einem dynamisch geplanten Abwärtsstreckendatenpaket entspricht,
das Konfigurationsmodul (130) eine Aggregationsstufe von PDCCH-CCEs bestimmt, und
dann, wenn ein Aufwärtsstreckensteuerkanal durch Sendediversity gesendet wird, die
Aggregationsstufe der PDCCH-CCEs aus einer zweiten Menge von Aggregationsstufen ausgewählt
wird; andernfalls die Aggregationsstufe von PDCCH-CCEs aus der ersten Menge von Aggregationsstufen
ausgewählt wird; und
für ACK/NACK, das einem persistent geplanten Abwärtsstreckendatenpaket entspricht,
eine SR und eine CQI/PMI/RI, die in dem Format 2/2a/2b gesendet werden, das Konfigurationsmodul
(130) das UE mit zwei verfügbaren Betriebsmitteln einer orthogonalen Folge konfiguriert,
und
wobei die erste Menge von Aggregationsstufen eine Aggregationsstufe von 1 umfasst,
und die zweite Menge von Aggregationsstufen die Aggregationsstufe von 1 nicht umfasst.
5. Basisstation nach Anspruch 4, wobei,
wenn das Konfigurationsmodul (130) das UE in der ersten Betriebsart konfiguriert,
das UE einen Aufwärtsstreckensteuerkanal durch einen einzelnen Antennenanschluss auf
einem verfügbaren Betriebsmittel einer orthogonalen Folge sendet, und die Aggregationsstufe
von PDCCH-CCEs eine Aggregationsstufe ist, die durch eine PDCCH-Detektionszuverlässigkeit
bestimmt ist; oder
wenn das Konfigurationsmodul (130) das UE mit der zweiten Betriebsart konfiguriert,
die Basisstation dem UE mehr als ein verfügbares Betriebsmittel einer orthogonalen
Folge zuweist, und das UE auf mehreren Antennenanschlüssen mit entsprechenden orthogonalen
Folgen unter Verwendung von Sendediversity sendet; oder
die Basisstation dem UE ein verfügbares Betriebsmittel mit einer orthogonalen Folge
zuweist und das UE einen Aufwärtsstreckensteuerkanal unter Verwendung eines einzelnen
Antennenanschlusses sendet.
1. Procédé de transmission d'un canal de commande de liaison montante, comprenant les
étapes suivantes :
une station de base configurant un équipement d'utilisateur, UE, avec un mode de transmission
de canal de commande de liaison montante par une signalisation de couche supérieure
(S101) ; et
la station de base recevant un canal de commande de liaison montante transmis par
diversité à l'émission ou un canal de commande de liaison montante transmis par un
seul port d'antenne depuis l'UE, conformément au mode de transmission de canal de
commande de liaison montante (S102) ;
où le mode de transmission comprend un premier mode et un second mode, et
dans le premier mode :
pour un ACK/NACK correspondant à un paquet de données de liaison descendante planifié
dynamiquement, la station de base détermine un niveau d'agrégation d'éléments de canal
de commande, CCE, de canal de commande de liaison descendante physique, PDCCH, où
le niveau d'agrégation des PDCCH CCE est sélectionné parmi un premier ensemble de
niveaux d'agrégation ; et
pour un ACK/NACK correspondant à un paquet de données de liaison descendante planifié
de manière persistante, une requête de planification, SR, et des informations de qualité
de canal, CQI, des informations de matrice de précodage, PMI, et des informations
de rang, RI, transmises dans un format 2/2a/2b, la station de base configure l'UE
avec une ressource de séquence orthogonale disponible par la signalisation de couche
supérieure ; et
dans le second mode,
pour un ACK/NACK correspondant à un paquet de données de liaison descendante planifié
dynamiquement, la station de base détermine un niveau d'agrégation de PDCCH CCE, et
si un canal de commande de liaison montante est transmis par diversité à l'émission,
alors le niveau d'agrégation des PDCCH CCE est sélectionné parmi un second ensemble
de niveaux d'agrégation ; sinon, le niveau d'agrégation des PDCCH CCE est sélectionné
parmi le premier ensemble de niveaux d'agrégation ; et
pour un ACK/NACK correspondant à un paquet de données de liaison descendante planifié
de manière persistante, une SR, et des informations CQI/PMI/RI transmises dans le
format 2/2a/2b, la station de base configure l'UE avec deux ressources de séquence
orthogonale disponibles par une signalisation de couche supérieure, et
où le premier ensemble de niveaux d'agrégation comprend un niveau d'agrégation de
1, et le second ensemble de niveaux d'agrégation ne comprend pas le niveau de d'agrégation
de 1.
2. Procédé de transmission d'un canal de commande de liaison montante selon la revendication
1, dans lequel :
le premier ensemble de niveaux d'agrégation comprend 1, 2, 4 et 8 ; et
le second ensemble de niveaux d'agrégation comprend 2, 4 et 8.
3. Procédé de transmission d'un canal de commande de liaison montante selon la revendication
1 ou la revendication 2, dans lequel
lorsque la station de base configure l'UE avec le premier mode, l'UE transmet un canal
de commande de liaison montante par un port d'antenne unique sur une ressource de
séquence orthogonale disponible, et le niveau d'agrégation des PDCCH CCE est un niveau
d'agrégation déterminé par une fiabilité de détection de PDCCH ; ou
lorsque la station de base configure l'UE avec le second mode, la station de base
alloue plus d'une ressource de séquence orthogonale disponible à l'UE, et l'UE transmet
sur plusieurs ports d'antennes avec des séquences orthogonales correspondantes à l'aide
d'une diversité à l'émission ; ou
la station de base alloue une ressource de séquence orthogonale disponible à l'UE,
et l'UE transmet un canal de commande de liaison montante en utilisant un port d'antenne
unique.
4. Station de base comprenant un module de configuration (130), un module de transmission
(110) et un module de réception (120), où :
le module de configuration (130) est configuré pour configurer un équipement d'utilisateur,
UE, avec un mode de transmission de canal de commande de liaison montante ;
le module de transmission (110) est configuré pour transmettre le mode de transmission
de canal de commande de liaison montante à l'UE par une signalisation de couche supérieure
; et
le module de réception (120) est configuré pour recevoir un canal de commande de liaison
montante transmis par diversité à l'émission ou un canal de commande de liaison montante
transmis par un seul port d'antenne depuis l'UE, conformément au mode de transmission
de canal de commande de liaison montante ;
où le mode de transmission comprend un premier mode et un second mode, et
dans le premier mode,
pour un ACK/NACK correspondant à un paquet de données de liaison descendante planifié
dynamiquement, le module de configuration (130) détermine un niveau d'agrégation d'éléments
de canal de commande de canal de commande de liaison descendante physique PDCCH CCE,
où le niveau d'agrégation des PDCCH CCE est sélectionné parmi un premier ensemble
de niveaux d'agrégation ; et
pour un ACK/NACK correspondant à un paquet de données de liaison descendante planifié
de manière persistante, une requête de planification, SR, et des informations de qualité
de canal, CQI, des informations de matrice de précodage, PMI, et des informations
de rang, RI, transmises dans un format 2/2a/2b, le module de configuration (130) configure
l'UE avec une ressource de séquence orthogonale disponible ; et
dans le second mode,
pour un ACK/NACK correspondant à un paquet de données de liaison descendante planifié
dynamiquement, le module de configuration (130) détermine un niveau d'agrégation de
PDCCH CCE, et si un canal de commande de liaison montante est transmis par diversité
à l'émission, alors le niveau d'agrégation des PDCCH CCE est sélectionné parmi un
second ensemble de niveaux d'agrégation ; sinon, le niveau d'agrégation des PDCCH
CCE est sélectionné parmi le premier ensemble de niveaux d'agrégation ; et
pour un ACK/NACK correspondant à un paquet de données de liaison descendante planifié
de manière persistante, une SR, et des informations CQI/PMI/RI transmises dans le
format 2/2a/2b, le module de configuration (130) configure l'UE avec deux ressources
de séquence orthogonale disponibles, et
où le premier ensemble de niveaux d'agrégation comprend un niveau d'agrégation de
1, et le second ensemble de niveaux d'agrégation ne comprend pas le niveau de d'agrégation
de 1.
5. Station de base selon la revendication 4, dans laquelle,
lorsque le module de configuration (130) configure l'UE avec le premier mode, l'UE
transmet un canal de commande de liaison montante par un port d'antenne unique sur
une ressource de séquence orthogonale disponible, et le niveau d'agrégation des PDCCH
CCE est un niveau d'agrégation déterminé par une fiabilité de détection de PDCCH ;
ou
lorsque le module de configuration (130) configure l'UE avec le second mode, la station
de base alloue plus d'une ressource de séquence orthogonale disponible à l'UE, et
l'UE transmet sur plusieurs ports d'antennes avec des séquences orthogonales correspondantes
à l'aide d'une diversité à l'émission ; ou
la station de base alloue une ressource de séquence orthogonale disponible à l'UE,
et l'UE transmet un canal de commande de liaison montante en utilisant un port d'antenne
unique.